[0001] The present invention relates to surgical apparatus for treating tumours in internal
organs or bones of the human body, the apparatus comprising a penetrative needle assembly
for penetrating into and devitalising target tissue in a region around the needle
assembly. The target tissue may be a tumour in e.g. the liver, the breast, the brain,
bones, the kidney or the lung.
[0002] Such apparatus is known e.g. from
US 5,827,276 (LeVeen et al),
US 2004/133196 (which concerns a development to the LeVeen needle) and
WO 03/026525 (RITA Medical Systems Inc.). The needle arrangements disclosed in the above specifications
necrotize the target tissue by radiofrequency ablation which heats the target tissue
to a temperature of between 60 and 100°C, resulting in cell death. The dead cells
are subsequently gradually reabsorbed by natural processes within the patient's body.
[0003] Another application of RF treatment is disclosed in
US 5,419,344 which is concerned with hair removal in the treatment of folliculitis barbae ("razor
bumps"). A thin probe is inserted into a hair follicle and "DC electrolysis" and "RF
thermolysis" circuits are connected directly between the probe and a "ground device"
held by the patient. The circuitry is unclear and no details of the power of either
circuit are given. However the "RF thermolysis" circuit apparently heats and softens
the tissue and it is stated that sodium hydroxide generated by electrolysis in the
follicle enables the hair to be withdrawn. The rate of reaction is increased by the
heating effect. There is no disclosure of ablation, i.e. tissue destruction.
[0004] Typically the power level employed in radiofrequency ablation is up to about 200W
at a frequency of typically 460 or 480 kHz.
[0005] Other literature references suggest powers of about 20W and frequencies of 460 kHz
or 480 kHz.
[0006] It will be apparent that the RF power generated in the DeWitt apparatus is considerably
below such levels, since only mild heating of a hair follicle is involved.
[0007] It should be noted however that in principle, a variety of energy transfer means
may be employed to ablate the target tissue, either by heating or by cooling. The
following modes of energy transfer are disclosed in
WO 03/026525:
(i) a microwave power source coupled to a microwave antenna providing microwave energy
in the frequency range from about 915 MHz to about 2.45 GHz;
(ii) a radio-frequency (RF) power source coupled to an RF electrode;
(iii) a coherent light source coupled to an optical fiber or light pipe;
(iv) an incoherent light source coupled to an optical fiber;
(v) a heated fluid coupled to a catheter with a closed or at least partially open
lumen configured to received the heated fluid;
(vi) a cooled fluid coupled to a catheter with a closed or at least partially open
lumen configured to receive the cooled fluid;
vii) a cryogenic fluid;
(viii) a resistive heating source coupled to ac conductive wire;
(ix) an ultrasound power source coupled to an ultrasound emitter, wherein the ultrasound
power source produces ultrasound energy in the range of about 300 kHz to about 3 GHz;
(x) and combinations thereof.
[0008] In principle all the above modes of energy transfer can be used for tumour ablation
in the apparatus of the present invention.
[0009] The LeVeen needle electrode is currently on the market and available from Boston
Scientific Corporation and comprises a cannula having ten flexible tines disposed
therein and deployable from a distal end of the cannula. The tines curve radially
outwardly in an umbrella configuration when deployed and penetrate into a tumour.
The electrodes are coupled to an RF power supply and distribute the RF energy into
the tumour. As a result, tumour tissue in a roughly spherical region several centimeters
in diameter is destroyed.
[0010] Nevertheless there is a need to increase the kill radius and in particular to kill
target tissue at a larger distance from the individual electrode tines, without employing
excessive power. One of the problems which arises in RF ablation is a drop in thermal
conductivity of the tissue as it is necrotized, particularly as a result of charring
of the tissue, complicated by changes in impedance of the tissue and hence changes
in the heating effect of the RF energy. A further problem which arises in the above
prior art apparatus is the need to connect one pole of the RF power supply to the
patient's body in order to provide a complete circuit, normally via a conductive pad
applied to the skin. This requirement tends to limit the power which can safely be
employed.
[0011] In an attempt to overcome or alleviate the above problems,
US 2004/0143259A (Mulier) discloses a needle apparatus in which conductive fluid (e.g. saline solution) is
introduced from two spaced apart distal regions of a needle assembly in the vicinity
of two RF electrodes to provide what are referred to as "virtual electrodes" constituted
by the bodies of liquid permeating into the tissue. RF power is conducted through
the region of tissue lying between these two bodies of liquid. Suction is applied
from an intermediate region of the needle to remove the saline solution.
[0012] However there remains a pressing need for improvements in the effectiveness of the
above apparatus.
[0013] For example another problem arises when blood vessels adjacent to the tumour act
as a sump, carrying heat away from the treated tissue and preventing adequate devitalisation.
This failure to obliterate tumor tissue is a well-recognised cause of patient death.
Increasing the radiofrequency power adjacent to a blood vessel can overcome this problem,
but at a cost: occlusion of or damage to the blood vessel.
[0014] On occasion this may lead to unwanted reduction in blood supply and consequent organ
failure.
[0015] Another undesirable feature of radiofrequency and other existing forms of ablation
is the reliance on completing the ablation in a short period of time: typically an
hour or so in a sedated patient having a percutaneous procedure or several hours in
a patient having synchronous surgery under general anaesthetic. Reliance on rapid
tissue necrosis can be a considerable insult to the body and has been shown to cause
"systemic inflammatory reaction syndrome" wherein the patient becomes febrile, tachycardic,
sweaty and unwell, requiring a longer hospital stay. Abscess formation is a potential
complication of this process.
[0016] US 6,258,086 (Oratec Interventions, Inc.) describes a catheter having an energy delivery device
and an activation element for delivering energy to a surgical site.
EP 1 053 720 (Gyrus Medical Limited) describes an electrosurgical generator comprising a source
of RF energy, an active output terminal, a return output terminal, a d.c. isolation
capacitance between the source and the active output terminal and a pulsing circuit
for the source to generate a pulsed RF output signal.
WO 03/103522 (Map Technologies LLC) describes methods and devices for electrosurgical electrolysis
comprising a probe having an electrode at the distal end and a handle at the proximal
end, an insulating sleeve positioned around the probe and an adjustably positionable
actuator for forming a cavity about the distal end of the probe.
[0017] The present invention provides surgical apparatus according to claim 1. In one embodiment,
said AC source is arranged to generate a power of at least 10W, more preferably at
least 20W.
[0018] The opposite pole of the DC source can be connected to a large conductive pad in
contact with the patient's skin or preferably (in order to avoid the risk of skin
burns) can instead be connected to a further electrode (e.g. in the form of a needle)
inserted separately into the patient's body tissue or can be connected to or inserted
through e.g. a cannula of the needle assembly through which the cathode extends. A
sleeve or internal coating of PTFE or other insulating material can be provided within
the lumen of the cannula to insulate the cathode from the cannula.
[0019] In a preferred embodiment the apparatus of the invention further comprises an anode
arranged to be inserted into the patient's body tissue.
[0020] Preferably said anode is in the form of a needle.
[0021] The combined effect of heating and electro-osmosis in the target tissue increases
the effectiveness of the apparatus. In particular the negative potential of the cathode
will attract water in the target tissue to the region of necrosis around the electrode
and tends to raise both the thermal and the electrical conductivity. This tends to
increase the volume of the region of tissue necrosis around the needle assembly, i.e.
it enables larger tumours to be treated using a given power.
[0022] Preferably said negative potential is in the range -9V to -12V relative to the positive
pole of said DC source.
[0023] Another feature of existing radiofrequency, cryogenic and similar ablative methods
is their need to transfer energy to (or from) the entire volume of tissue which is
to be necrotised.
[0024] In a preferred embodiment of the present invention, the needle apparatus comprises
an extendable electrode array which is deployable to enclose a volume of tumour tissue
and is arranged in use to electrolyse selectively the periphery of the enclosed volume.
By applying high energy alternating current at radiofrequency in a cutting diathermy
mode, the extendable electrode array can expand to its desired shape such that the
electrodes surround the tumour. Following this, supplementary electrolysis, ablative
RF, or other ablation treatment can be delivered as required. This typically will
result in a shell of coagulative necrosis at the periphery of the enclosed volume
which will isolate tumour tissue within the interior of the enclosed volume from its
supply of blood or other nutrients. Hence the interior tumour tissue will also die,
even if it is not ablated. Repair or regrowth of nutrient channels can be prevented
by continued application of DC.
[0025] One advantage of an embodiment of the present invention that generates electrolysis
is that electrolysis can devitalise tissue right up to a blood vessel wall. This arises
from the electrically insulating properties of the walls of blood vessels. Furthermore,
for this reason blood vessels can be left intact by such apparatus, which can be advantageous
e.g. in a situation of liver cirrhosis where it is important to preserve blood supply
to non-cancerous liver.
[0026] The principles of operation of two preferred embodiments of the invention into different
aspects are described below.
[0027] Figure 1 is a purely schematic diagram showing a penetration anode 1 inserted in
the liver L of a patient. Chloride ions (either naturally present in the body fluid
or provided by injecting saline solution in the vicinity of the anode) are discharged
and have a potent cytocidal effect in a region R1 surrounding the anode. The anode
1 is connected to the positive pole of a DC power supply (not shown) whose negative
pole is connected to a cathode (not shown) inserted into body tissue or in contact
with the patient's skin.
[0028] The bubbles B of chlorine gas surrounding the anode 1 can be detected by ultrasonic
imaging, either B-mode (because the bubbles have distinctly different sonic impedance
from the surrounding tissue) or Doppler ultrasound (because the bubbles are moving).
In principle, a cathode could be inserted in the liver or could be provided in the
form of a conductive pad in contact with the exterior of the patient's body, for example.
[0029] Apart from the discharge of chloride ions as noted above, electrolysis promotes coagulation
of tissue (fulguration) which is a further mechanism of necrosis. In principle, this
effect would also occur at the cathode.
[0030] Figure 2 shows the mode of action when the electrode 1 is cathodic and attracts water
to a surrounding region L2 by electro-endosmosis. An RF power supply 2 is connected
between the electrode 1 and an external conductive pad P which is applied to the patient's
skin S. Good electrical contact with the skin S is ensured by applying a conventional
conductive gel. A DC potential is applied between electrode 1 and pad P by a DC power
supply (not shown) so that a DC path is established through the patient's body.
[0031] In use, tissue surrounding electrode 1 is nectrotized by RF ablation and the moisture
attracted to the region of the electrode 1 improves both thermal and electrical conductivity
and thereby increases the size of the region L2 within which target tissue is necrotized.
By the same token surrounding tissue from which water is withdrawn has a lower thermal
and electrical conductivity and is protected. Optionally, the DC potential applied
between electrode 1 and pad P is sufficient to electrolyze body fluid (which contains
sodium ions, chloride ions and hydrogen ions) in the region of electrode 1, so that
hydrogen bubbles B are generated. These can be detected by ultrasound imaging to enable
the position of electrode 1 to be determined. In principle, the gas bubbles could
alternatively be detected by other non invasive imaging means.
[0032] In a preferred embodiment of the invention the needle assembly comprises a cannula
and at least one said electrode disposed within and extendible from a distal end of
said cannula and shaped to penetrate into target tissue.
[0033] Preferably a plurality of electrodes are disposed within and extendible from the
distal end of said cannula and shaped to penetrate into target tissue and are arranged
in use to generate electro-osmosis and optionally electrolysis in target tissue in
said region. In one embodiment described below the apparatus is a modified version
of the LeVeen needle in which a DC biasing potential is applied to the electrode,
or to one of the radiating tines, or a separate central tine which extends centrally
to lie equidistant to the multiple radial tines. In another embodiment the apparatus
comprises a needle with a plurality of electrode loops which can be extended radially
outwardly to penetrate tumour tissue (e.g. by virtue either of the radial cutting
pressure they apply or of the weakening effect of electrolysis and/or radiofrequency
ablation applied in cutting diathermy mode) to form a cage which encloses the tumour.
[0034] In certain embodiments, said electrodes are all arranged in use to be biased with
the same polarity, said apparatus further comprising means for establishing an electrical
connection of opposite polarity with the body of a patient.
[0035] Alternatively, one or more of said electrodes are arranged to be biased with one
polarity and one or more others of said electrodes are arranged to be biased with
the opposite polarity.
[0036] In a further variant the apparatus further comprises means for selectively reversing
the polarity of one or more of said electrodes.
[0037] This embodiment has particular advantages in situations where a tumour is located
close to a vein or an artery which would tend to conduct heat away from the tumour.
Conventional RF ablation apparatus might not kill a tumour in such a location, but
the presence of a vein or an artery would not prevent and indeed might enhance electrolytic
necrosis, particularly if the electrode(s) penetrating into the tumour is/are anodically
biased so as to discharge chloride ions. More generally, the facility to select the
polarity of individual electrodes enables the size and shape of the region of necrosis
to be adjusted to match the size and shape of the tumour or other target tissue.
[0038] In another embodiment the needle assembly has a lumen in communication with a source
of conducting liquid and is arranged to introduce the conducting liquid into said
target tissue, said electrode being disposed in said region and arranged to induce
electrolysis in said target tissue.
[0039] In a related embodiment said needle assembly has a lumen communicating with a source
of conducting liquid and is arranged to introduce the conducting liquid into said
target tissue, said electrode being in electrical contact with said conducting liquid
and arranged to induce electro-osmosis in target tissue in said region.
[0040] In one embodiment, said apparatus further comprises means for introducing an electrolyte
into said target tissue.
[0041] Preferably said introducing means communicates with a source of electrolyte, cytocidal
substance or precursor thereof, said electrolyte being electrolysible to generate
a pharmaceutical agent in situ. For example the pharmaceutical agent can be an antitumour
compound.
[0042] Preferred embodiments will now be described by way of example only with reference
to the accompanying drawings wherein:
Figure 1 (already referred to) is a diagrammatic cross section showing the electrolytic
effect of an electrode in liver tissue;
Figure 2 (already referred to) is a diagrammatic representation showing the electro-osmotic
effect of an electrode inserted in liver tissue;
Figure 3 is a diagrammatic representation of one embodiment of the invention shown
inserted into the liver of a patient;
Figure 4 is a diagrammatic representation of a further embodiment of the invention,
again shown inserted into the liver of a patient;
Figure 5A is a schematic side elevation of a further needle assembly N' which can
be substituted for the needle N of Figure 3;
Figure 5B is a schematic side elevation showing the electrode loops of needle N' fully
deployed;
Figure 6 is an end elevation of the needle of Figures 5A and 5B showing the cage formed
by the fully deployed electrode loops;
Figure 7 is an axial cross- section taken on VII-VII of Figure 5A;
Figure 8A is a schematic side elevation of a further needle assembly N"' which can
be substituted for the needle N of Figure 3,
Figure 8B is a similar schematic side elevation showing the electrode loops of needle
N"' fully deployed, and
Figure 9 is a schematic diagram of a further embodiment.
[0043] Referring to Figure 3, a needle assembly N is shown penetrated into the liver L of
a patient and comprises a cannula C having a plurality of e.g. ten flexible electrodes
1 extending within its bore from the proximal end to the (lower) distal end thereof
and terminating at fixed points 3 near the distal end thereof. Preferably the electrodes
1 are insulated from the cannula C. Prior to insertion, the electrodes 1 are fully
withdrawn through the bore of the cannula C so that their end portions are tightly
folded over and in contact with its distal rim. In this configuration the cross-section
of the needle assembly N is minimized and it can be inserted into a desired target
region of the patient's liver L. The proximal ends of the electrodes 1 are then pushed
through the bore of the cannula to expand into distal loops which extend transversely
in a radially distributed array as shown in the Figure.
[0044] A conductive pad P is connected to the skin S of the patient and an RF power supply
2 which generates a power of typically 20 to 200 watts at a frequency of 460 kHz is
connected between the electrodes 1 and the pad P and is used to ablate the target
tissue. A polarizing voltage of e.g. 3 to 9 volts is applied between the pad P and
electrodes 1 by a DC power supply 4 and can be switched in polarity. A radio frequency
inductor I (of e.g. 1 milliHenry) is connected between one pole of the DC power supply
and one pole of the RF power supply in order to prevent short-circuiting of the RF
power supply by the DC power supply.
[0045] In one mode of operation the electrodes 1 are cathodic and attract water to the surrounding
region R, thereby increasing the thermal conductivity and electrical conductivity
of the tissue in the region of the electrodes and enhancing the cytocidal effect.
In another mode of operation, the polarity is reversed to make the electrodes anodic,
discharging chloride ions and generating chlorine which has its own cytocidal effect,
in addition to the cytocidal effect of electrolysis.
[0046] The bubbles B generated by electrolysis remain close to the electrode 1 before being
dispersed in the tissue and thereby define the shape of the electrodes which viewed
by an ultrasound imaging system US. This utilises a conventional probe PR applied
against the skin S of the patient over the liver L.
[0047] In a variant, the electrodes 1 can be insulated from one another and individually
connected to selectable poles of a DC power supply, the pad P being omitted. In this
variant, the terminals of the RF power supply 2 are connected between different electrodes,
as are the terminals of the DC power supply 4, and RF ablation and electro-endosmosis
and/orelectrolysis occur between selected electrodes 1 or selected groups of electrodes.
[0048] After RF ablation has been completed, the cannula C can be temporarily disconnected
from the electrodes 1 and a battery can be connected between the skin pad P and the
electrodes 1 and worn by the patient to continue electrolytic treatment after the
surgical ablation has been completed.
[0049] The embodiment of Figure 4 is a development of the apparatus disclosed in
US 2004/0143259 and comprises a needle assembly N' which includes an outer cannula C1, an intermediate
cannula C2 and an inner cannula C3. As shown schematically in the Figure, saline solution
is injected into the inner cannula C3 and into the passage defined between the outer
cannula C1 and the intermediate cannula C2 so as to flow into regions R1 and R2 of
the patient's liver L. As shown, a suction communicates with the bore of cannula C2
and suction is applied to remove liquid, solid or gaseous debris (in particular, excess
saline solution). A first electrode 1A is disposed on cannula C1 near region R1 and
a second electrode 1B is disposed on cannula C3 within region R2. A power supply arrangement
similar to that shown in Figure 3, comprising an RF power supply 2 connected in parallel
with a reversible polarity DC power supply 4 is connected between electrodes 1A and
1B (by insulated conductors, not shown, extending through the needle assembly N')
and RF ablation occurs in the region R3 between regions R1 and R2. A radiofrequency
inductor I (of e.g. 1milliHenry) is connected between one pole of the DC power supply
and one pole of the RF power supply in order to prevent short-circuiting of the RF
power supply by the DC power supply. It will be appreciated by persons skilled in
the art that the electrodes 1A and 1B are insulated from the needle assembly N'. Electrolytic
and/or electro-osmotic effects occur in regions R1 and R2 and enhance the cytocidal
effect. In particular, the introduction of saline solution enhances the generation
of chlorine in the anodic region.
[0050] A thermocouple probe P can be inserted through the lumen of cannula C2 and can be
used to detect the temperature in the target tissue and hence to monitor and/or control
the power applied by RF power supply 2 in a conventional manner.
[0051] Figure 5A shows a needle assembly N" partly in section and having a barrel portion
with eight regularly circumferentially distributed apertures a provided near its sharpened
distal tip and eight apertures b similarly disposed near its proximal end, with resilient
wire loop electrodes 1 extending longitudinally between each aligned pair of apertures
a, b. The distal ends of the wire electrodes are confined within the needle tip and
the proximal ends are coupled to the expanded end of an operating rod 10 which terminates
in a distal handle 11. Handle 11 is insulated and is slidable within the barrel of
the needle assembly and forms a fluid-tight seal therewith.
[0052] Preferably a port 12 is provided to inject saline or other electrolyte or cytocidal
fluid or precursor thereof solution which in use flows out through apertures a and
b.
[0053] Figure 5B shows the handle 11 fully advanced to push the wire electrode loops 1 out
of the apertures b to form a cage in the form of a prolate spheroid as shown in Figure
6. The wire loops are sufficiently thin and stiff to cut tumour tissue as they are
expanded radially by advancing handle 11. If necessary this process can be assisted
by applying RF ablating power as cutting diathermy and/or DC to lessen the physical
resistance of the tissue.
[0054] As shown in Figure 6 a generally spheroidal region R of tumour tissue is enclosed
by the resulting electrode cage. This shape is preferable to the doughnut shaped region
R enclosed by the electrode configuration of Figure 3. Electrolysis and ablation (either
successive or simultaneous) will have most effect on the periphery of region R and
will cut off nutrient channels to its interior, resulting in eventual cell death even
in the interior which might not be affected significantly by the RF ablation.
[0055] Figure 7 shows the needle barrel conducting saline solution through its bore around
operating rod 10.
[0056] Figure 8A shows a needle assembly in which a rod 110 having an enlarged sharpened
distal tip carries a sliding collar 100. Resilient wire electrode loops 1 extend longitudinally
between collar 100 and the rear face of the enlarged distal tip. A locating notch
13 is provided in rod 110 and a complementary resilient interior projection (not shown)
in collar 100 engages the notch when the collar is advanced as shown in Figure 8B.
In this configuration the wire electrode loops are compressed and extend radially
outwardly to form a cage similar to that formed by the embodiment of Figures 5A to
7. Deployment and retraction can be controlled by a motor drive (not shown) coupled
to the collar 100 and operation rod 110.
[0057] A further adjustable limiting collar can be applied to allow variability in the diameter
of the wire cage.
[0058] In all the above embodiments, conventional means can be employed to monitor the electrical
conductivity of the tissue in order to monitor and/or control the ablation power.
[0059] Referring to Figure 9, a preferred embodiment of the invention is shown, comprising
a needle N"" which comprises an insulating barrel portion 100 in which is inserted
a metal cannula portion C' with a sharp tapered distal tip which enables it to penetrate
to the skins of a patient and into the liver L or other internal body organ to treat
a tumour T therein. The length of the exposed portion of the cannula is suitably 300
mm to 350 mm. The barrel portion 100 has an axial bore 17 therein, which accommodates
a plunger 110 having an enlarged handle portion at its proximal end and carrying metallic
tines 1 which are embedded in a distal end wall portion of the cannula and accommodated
within a axial channel formed therein. The axial channel has a bend formed at the
proximal end within the handle portion of the plunger and the tines terminate in contacts
C1... Cn. For ease of illustration, only two tines 1 are shown but in practice ten
or more tines may be provided. The distal ends of the tines are joined together and
bear against a stop 16 formed of insulating material such as PTFE and are electrically
isolated from the cannula C' by a sleeve portion of the barrel 100 which extends within
the bore of the cannula. A further contact A is led out through the barrel portion
100 from the cannula C'.
[0060] As shown, the plunger 110 is shown in a nearly fully extended position (i.e. to the
left in the drawing), in which position it forces the tines 1 to bow outwards to form
a prolate spheroid corresponding in size and shape to the tumour T. During initial
insertion, the plunger 110 is kept in its withdrawn position (i.e. to the right in
the drawing) in which the tines 1 are in a relaxed straight configuration and are
accommodated within the cannula C'. Axially extending slots 15 are regularly circumferentially
distributed about the distal portion of cannula C' in order to accommodate the projection
and retraction of the tines 1. Thus each tine extends from and retracts into a respective
slot 15.
Both the tines 1 and the cannula C' are suitably made from an inert metal or alloy
in order to resist the effects of electrolytic corrosion and for this purpose may
be coated with e.g. platinum.
[0061] The above contacts C1... Cn of the tines 1 are connected to one output terminal of
a parallel-connected combination of RF power supply 2 and a DC power supply 4, the
contacts C1... Cn being connected to the negative pole of the DC power supply and
the contact A being connected to the positive pole. Thus the tines 1 are cathodic
and attract water from the surrounding tissue by electro-endosmosis.
[0062] As in the previously described embodiments, an inductor I having a value of 1 milliHenry
is connected in series between one pole of the DC power supply 4 and the RF power
supply 2 and prevents short circuiting of the RF power supply. Furthermore a switch
SW is connected between one pole of the RF power supply and its output connection
to cannula contact A and a timer 13 is connected to DC power supply 4.
[0063] In use, as stated above the cannula C' is inserted through the skins of a patient
and penetrates into the liver or other affected organ to the site of a tumour T with
the tines 1 in their retracted condition. The tines 1 are optionally formed of a shaped-memory
metal. After insertion, the plunger 110 is depressed to force the tines radially outwardly
into the configuration shown in the drawing and DC is applied to the needle from power
supply 4 under the control of timer 13. The voltage is suitably in the range 9 to
12 volts and is applied for typically five minutes in order to hydrate the target
tissue in the region of the tumour. During this phase, the RF power supply is switched
off, i.e. the switch SW is open.
[0064] The switch SW is then closed to apply RF power between the tines 1 and exposed metallic
portion of cannula C' within the tumour T, causing ablation of the tumour at a power
of typically 20 watts. This phase is terminated when the detected impedance as sensed
by the needles reaches a predetermined value e.g. 999 ohms, indicating that ablation
has been substantially completed. During this phase, the DC power supply 4 remains
energized. When ablation has been completed, the plunger 110 is retracted (i.e. moved
to the right in the drawing) to retract the tines 1 and the instrument is withdrawn
from the patients body.
[0065] In a variant, the tines 1 could be insulated from one another and RF and/or DC could
be applied selectively to different tines. In a further variant, the biasing potential
provided by the DC power supply 4 could be applied between different insulated tines
rather than between a set of tines and the cannula C' as described above.
[0066] In the above described preferred embodiments of the invention, the cathode is also
coupled to an AC power supply and is arranged to necrotize target tissue by diathermal
ablation. However as noted above other modes of energy transfer, eg laser, microwave
or other heating/desiccating means may be employed to ablate the target tissue.
1. Surgical apparatus for treating tumours in a human patient, the apparatus comprising
a penetrative needle assembly (N/N'/N"/N"'/N"") for penetrating into and ablating
tumour tissue (T), said penetrative needle assembly (N/N'/N"/N"'/N"") comprising at
least one cathode (1) for hydrating, by electro-endosmosis, target tumour tissue (T)
in the ablation region (R) around the needle assembly (N/N'/N"/N"'/N""), an AC source
(2) coupled to said cathode (1) for generating RF ablation in said region (R), wherein
the AC source (2) is arranged to generate a power of at least 5W, a DC source (4)
arranged to bias said cathode (1) to a negative potential to induce electro-endosmosis,
and switching means (SW) connected between one pole of said AC source (2) and its
output connection.
2. Surgical apparatus according to claim 1 wherein said AC source (2) is arranged to
generate a power of at least 10W, such as 20W.
3. Surgical apparatus according to claim 1 or claim 2 further comprising an anode (C')
arranged to be inserted into the patient's body tissue.
4. Surgical apparatus according to claim 3 wherein said anode is in the form of a needle
(C').
5. Surgical apparatus according to any preceding claim wherein said negative potential
is in the range 9V to 12V relative to the positive pole of said DC source (4).
6. Surgical apparatus according to any preceding claim wherein said switching means are
arranged to apply an initial treatment phase in which said cathode (1) is biased to
a negative potential to induce electro-endosmosis and a subsequent treatment phase
in which said energy transfer means is activated to ablate target tumour tissue (T)
hydrated in the initial treatment phase.
7. Surgical apparatus according to any preceding claim wherein said needle assembly comprises
a cannula (C/C1, C2, C3/C') and at least one said cathode (1) disposed within and
extendable from a distal end of said cannula and shaped to penetrate into target tissue
(T).
8. Surgical apparatus according to claim 7 wherein a plurality of electrodes (1) are
disposed within and extendable from the distal end of said cannula (C/C') and shaped
to penetrate into target tumour tissue (T) and are arrangeable in use to induce electro-endosmosis
in target tumour tissue in said region (R).
9. Surgical apparatus according to claim 8 wherein said electrodes (1) are all arrangeable
in use to be biased with the same polarity, said apparatus further comprising means
(P/C') for establishing an electrical connection of opposite polarity with the body
of a patient.
10. Surgical apparatus according to claim 8 wherein one or more of said electrodes (1)
are arranged to be biased with one polarity and one or more others of said electrodes
are arranged to be biased with the opposite polarity.
11. Surgical apparatus according to any of claims 8 to 10 further comprising means for
selectively reversing the polarity of one or more of said electrodes.
12. Surgical apparatus according to any of claims 1 to 7 wherein said needle assembly
(N') has a lumen communicating with a source of conducting liquid or cytocidal substance
or precursor thereof and is arranged to introduce the conducting liquid or substance
into said target tumour tissue (T), said cathode being in electrical contact with
said conducting liquid or substance and arranged to induce electro-endosmosis in target
tissue in said region.
13. Surgical apparatus according to claim 12 further comprising extraction means in communication
with a further lumen of said needle arrangement and arranged to extract liquid, solid
or gaseous debris from said target tissue (T).
14. Surgical apparatus according to any preceding claim wherein said needle assembly (N)
is arranged to generate electrolysis in said region, said apparatus further comprising
ultrasonic imaging means (US) arranged to detect electrolytically-produced gases in
said region (R).
15. Surgical apparatus according to claim 14 wherein said ultrasonic imaging means is
a Doppler ultrasound imager (US).
16. Surgical apparatus according to any preceding claim, wherein said needle assembly
(N/N") comprises an extendable electrode array (1) which is deployable to enclose
a volume of tumour tissue and is arrangeable in use to ablate selectively the periphery
of the enclosed volume.
1. Chirurgische Vorrichtung zur Behandlung von Tumoren bei einem menschlichen Patienten,
wobei die Vorrichtung Folgendes umfasst: eine Eindringungsnadelanordnung (N/N'/N''/N'''/N'''')
zum Eindringen in und Abladieren von Tumorgewebe (T), wobei die Eindringungsnadelanordnung
(N/N'/N''/N'''/N"") mindestens eine Kathode (1) zum Hydratisieren von Zieltumorgewebe
(T) im Ablationsbereich (R) um die Nadelanordnung (N/N'/N''/N'''/N"") durch Elektroendosmose,
eine mit der Kathode (1) gekoppelte Wechselstromquelle (2) zum Erzeugen von HF-Ablation
in dem Bereich (R), wobei die Wechselstromquelle (2) so angeordnet ist, dass sie eine
Leistung von mindestens 5 W erzeugt, eine Gleichstromquelle (4), die angeordnet ist,
um die Kathode (1) auf ein negatives Potential zu legen, um eine Elektroendosmose
zu induzieren, und Schaltmittel (SW) umfasst, die zwischen einem Pol der Wechselstromquelle
(2) und deren Ausgangsanschluss angeschlossen sind.
2. Chirurgische Vorrichtung nach Anspruch 1, wobei die Wechselstromquelle (2) so angeordnet
ist, dass sie eine Leistung von mindestens 10 W, wie etwa 20 W, erzeugt.
3. Chirurgische Vorrichtung nach Anspruch 1 oder 2, weiter umfassend eine Anode (C'),
die so angeordnet ist, dass sie in das Körpergewebe des Patienten eingeführt werden
kann.
4. Chirurgische Vorrichtung nach Anspruch 3, wobei die Anode in Form einer Nadel (C')
vorliegt.
5. Chirurgische Vorrichtung nach einem der vorhergehenden Ansprüche, wobei das negative
Potential im Bereich von 9 V bis 12 V relativ zum positiven Pol der Gleichstromquelle
(4) liegt.
6. Chirurgische Vorrichtung nach einem der vorhergehenden Ansprüche, wobei die Schaltmittel
so angeordnet sind, dass sie eine Anfangsbehandlungsphase, wobei die Kathode (1) auf
ein negatives Potential gelegt wird, um eine Elektroendosmose zu induzieren, und eine
nachfolgende Behandlungsphase ausführen, wobei das Energieübertragungsmittel aktiviert
wird, um das in der Anfangsbehandlungsphase hydratisierte Zieltumorgewebe (T) zu abladieren.
7. Chirurgische Vorrichtung nach einem der vorhergehenden Ansprüche, wobei die Nadelanordnung
eine Kanüle (C/C1, C2, C3/C') und mindestens eine genannte Kathode (1) umfasst, die
in einem distalen Ende der Kanüle angeordnet ist und aus diesem ausgefahren werden
kann und geformt ist, um in Zielgewebe (T) eindringen.
8. Chirurgische Vorrichtung nach Anspruch 7, wobei eine Vielzahl von Elektroden (1) in
dem distalen Ende der Kanüle (C/C') angeordnet ist und aus diesem ausgefahren werden
kann und geformt ist, um in Zieltumorgewebe (T) einzudringen und im Gebrauch angeordnet
werden kann, um eine Elektroendosmose im Zieltumorgewebe in dem Bereich (R) zu induzieren.
9. Chirurgische Vorrichtung nach Anspruch 8, wobei die Elektroden (1) alle im Gebrauch
angeordnet werden können, um mit der gleichen Polarität vorgespannt zu werden, wobei
die Vorrichtung weiter Mittel (P/C') zum Herstellen einer elektrischen Verbindung
mit entgegengesetzter Polarität mit dem Körper eines Patienten umfasst.
10. Chirurgische Vorrichtung nach Anspruch 8, wobei eine oder mehrere der Elektroden (1)
so angeordnet sind, dass sie mit einer Polarität vorgespannt werden können und eine
oder mehrere andere der Elektroden so angeordnet sind, dass sie mit der entgegengesetzten
Polarität vorgespannt werden können.
11. Chirurgische Vorrichtung nach einem der Ansprüche 8 bis 10, weiter umfassend Mittel
zum selektiven Umkehren der Polarität einer oder mehrerer der Elektroden.
12. Chirurgische Vorrichtung nach einem der Ansprüche 1 bis 7, wobei die Nadelanordnung
(N') ein Lumen aufweist, das mit einer Quelle einer leitfähigen Flüssigkeit oder einer
zellzerstörenden Substanz oder eines Vorläufers davon in Verbindung steht und angeordnet
ist, um die leitfähige Flüssigkeit oder Substanz in das Zieltumorgewebe (T) einzuführen,
wobei die Kathode in elektrischem Kontakt mit der leitfähigen Flüssigkeit oder Substanz
steht und angeordnet ist, um eine Elektroendosmose in Zielgewebe in dem Bereich zu
induzieren.
13. Chirurgische Vorrichtung nach Anspruch 12, weiter umfassend Extraktionsmittel, die
mit einem weiteren Lumen der Nadelanordnung in Verbindung stehen und angeordnet sind,
um flüssige, feste oder gasförmige Rückstände aus dem Zielgewebe (T) zu extrahieren.
14. Chirurgische Vorrichtung nach einem der vorhergehenden Ansprüche, wobei die Nadelanordnung
(N) angeordnet ist, dass sie eine Elektrolyse in dem Bereich erzeugt, wobei die Vorrichtung
weiter ein Ultraschallbildgebungsmittel (US) umfasst, das angeordnet ist, um elektrolytisch
erzeugte Gase in dem Bereich (R) zu detektieren.
15. Chirurgische Vorrichtung nach Anspruch 14, wobei das Ultraschallbildgebungsmittel
ein Doppler-Ultraschall-Imager (US) ist.
16. Chirurgische Vorrichtung nach einem der vorhergehenden Ansprüche, wobei die Nadelanordnung
(N/N'') eine ausdehnbare Elektrodenanordnung (1) umfasst, die einsetzbar ist, um ein
Tumorgewebevolumen zu umschließen und im Gebrauch angeordnet werden kann, um selektiv
den Umfang des umschlossenen Volumens zu abladieren.
1. Appareil chirurgical pour le traitement des tumeurs chez un patient humain, l'appareil
comprenant un ensemble d'aiguille pénétrante (N/N'/N" /N"'/N"") pour pénétrer dans
et retirer par ablation une tumeur (T), ledit ensemble d'aiguille pénétrante (N/N'/N"/N"'/N"")
comprenant au moins une cathode (1) pour l'hydratation, par électroendosmose, du tissu
tumoral cible (T) dans la région d'ablation (R) autour de l'ensemble d'aiguille (N/N'/N"/N"'/N""),
une source de CA (2) couplée à ladite cathode (1) pour fournir une tension d'ablation
RF dans ladite région (R), dans lequel la source de CA (2) est placée pour fournir
une puissance d'au moins 5 W, une source de CC (4) placée pour polariser ladite cathode
(1) avec un potentiel négatif pour induire une électroendosmose, et des moyens de
commutation (SW) connectés entre un pôle de ladite source de CA (2) et sa connexion
de sortie.
2. Appareil chirurgical selon la revendication 1, dans lequel ladite source de CA (2)
est placée pour générer une puissance d'au moins 10 W, telle que 20 W.
3. Appareil chirurgical selon la revendication 1 ou la revendication 2, comprenant également
une anode (C') placée pour être insérée dans le tissu corporel du patient.
4. Appareil chirurgical selon la revendication 3, dans lequel ladite anode est sous la
forme d'une aiguille (C').
5. Appareil chirurgical selon une quelconque revendication précédente, dans lequel ledit
potentiel négatif est dans la fourchette de 9 V à 12 V relativement au pôle positif
de ladite source de CC (4).
6. Appareil chirurgical selon une quelconque revendication précédente, dans lequel lesdits
moyens de commutation sont placés pour appliquer une phase de traitement initial dans
laquelle ladite cathode (1) est polarisée vers un potentiel négatif pour induire une
électroendosmose et une phase de traitement ultérieure dans laquelle ledit moyen de
transfert d'énergie est activé pour l'ablation du tissu tumoral cible (T) hydraté
lors de la phase de traitement initiale.
7. Appareil chirurgical selon une quelconque revendication précédente, dans lequel ledit
ensemble d'aiguille comprend une canule (C/C1, C2, C3/C') et au moins une de ladite
cathode (1) placée à l'intérieur et prolongeable à partir d'une extrémité distale
de ladite canule et formée pour pénétrer dans le tissu cible (T).
8. Appareil chirurgical selon la revendication 7, dans lequel une pluralité d'électrodes
(1) est placée à l'intérieur et prolongeable de l'extrémité distale de ladite canule
(C/C') et formée pour pénétrer dans le tissu tumoral cible (T) et est disposable en
utilisation pour induire une électroendosmose dans le tissu tumoral cible dans ladite
région (R).
9. Appareil chirurgical selon la revendication 8, dans lequel lesdites électrodes (1)
sont toutes disposables en utilisation pour être polarisées avec la même polarité,
ledit appareil comprenant également un moyen (P/C') pour établir une connexion électrique
de polarité opposée avec le corps d'un patient.
10. Appareil chirurgical selon la revendication 8, dans lequel une ou plusieurs desdites
électrodes (1) sont placées pour être polarisées avec une polarité et une ou plusieurs
autres desdites électrodes sont placées pour être polarisées avec la polarité opposée.
11. Appareil chirurgical selon l'une quelconque des revendications 8 à 10, comprenant
également un moyen pour inverser la polarité d'une ou de plusieurs desdites électrodes.
12. Appareil chirurgical selon l'une quelconque des revendications 1 à 7, dans lequel
ledit ensemble d'aiguille (N') comporte une lumière communiquant avec une source de
liquide conducteur ou de substance cytocide ou un précurseur de celle-ci et elle est
placée pour introduire le liquide ou la substance conductrice dans le tissu tumoral
cible (T), ladite cathode étant en contact électrique avec ledit liquide ou substance
conductrice et placée pour induire une électroendosmose dans le tissu cible dans ladite
région.
13. Appareil chirurgical selon la revendication 12, comprenant également un moyen d'extraction
en communication avec une autre lumière dudit ensemble d'aiguille et placé pour extraire
des débris liquides, solides ou gazeux dudit tissu cible (T).
14. Appareil chirurgical selon une quelconque revendication précédente, dans lequel ledit
ensemble d'aiguille (N) est placé pour générer une électrolyse dans ladite région,
ledit appareil comprenant également un moyen d'imagerie ultrasonique (US) placé pour
détecter des gaz produits électrolytiquement dans ladite région (R).
15. Appareil chirurgical selon la revendication 14, dans lequel le moyen d'imagerie ultrasonique
est un dispositif d'imagerie Doppler à ultrasons (US).
16. Appareil chirurgical selon une quelconque revendication précédente, dans lequel ledit
ensemble d'aiguille (N/N") comprend un réseau d'électrodes extensible (1) qui peut
être déployé pour entourer un volume de tissu tumoral et est placé en utilisation
pour couper sélectivement la périphérie du volume entouré.